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PMID: 20015393 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

TargetSearch--a Bioconductor package for the efficient preprocessing of GC-MS metabolite profiling data.

BMC bioinformatics ·Vol. 10 ·2009-12-16 ·Pages 428

Cuadros-Inostroza A, Caldana C, Redestig H, Kusano M, Lisec J, Peña-Cortés H, Willmitzer L, Hannah MA

Abstract

Metabolite profiling, the simultaneous quantification of multiple metabolites in an experiment, is becoming increasingly popular, particularly with the rise of systems-level biology. The workhorse in this field is gas-chromatography hyphenated with mass spectrometry (GC-MS). The high-throughput of this technology coupled with a demand for large experiments has led to data pre-processing, i.e. the quantification of metabolites across samples, becoming a major bottleneck. Existing software has several limitations, including restricted maximum sample size, systematic errors and low flexibility. However, the biggest limitation is that the resulting data usually require extensive hand-curation, which is subjective and can typically take several days to weeks. We introduce the TargetSearch package, an open source tool which is a flexible and accurate method for pre-processing even very large numbers of GC-MS samples within hours. We developed a novel strategy to iteratively correct and update retention time indices for searching and identifying metabolites. The package is written in the R programming language with computationally intensive functions written in C for speed and performance. The package includes a graphical user interface to allow easy use by those unfamiliar with R. TargetSearch allows fast and accurate data pre-processing for GC-MS experiments and overcomes the sample number limitations and manual curation requirements of existing software. We validate our method by carrying out an analysis against both a set of known chemical standard mixtures and of a biological experiment. In addition we demonstrate its capabilities and speed by comparing it with other GC-MS pre-processing tools. We believe this package will greatly ease current bottlenecks and facilitate the analysis of metabolic profiling data.

MeSH Terms
Computational Biology/methods Databases, Factual Gas Chromatography-Mass Spectrometry/methods Metabolome Pattern Recognition, Automated Proteome/analysis Proteomics/methods Software User-Computer Interface
Chemicals
Proteome
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Cuadros-Inostroza Alvaro
Max Planck Institute of Molecular Plant Physiology, Am Mühlenberg 1, D-14476 Potsdam-Golm, Germany. [email protected]
Caldana Camila
Redestig Henning
Kusano Miyako
Lisec Jan
Peña-Cortés Hugo
Willmitzer Lothar
Hannah Matthew A
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Article Info
Journal
BMC bioinformatics
Abbr.
BMC Bioinformatics
ISSN
1471-2105
Published
2009-12-16
Epub
2009-00-16
Pages
428
Language
English
Region
England
NLM ID
100965194
PMCID
PMC3087348
Subset
IM
Analysis Services
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